Journal
RSC ADVANCES
Volume 6, Issue 22, Pages 18718-18736Publisher
ROYAL SOC CHEMISTRY
DOI: 10.1039/c5ra25545g
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Funding
- CSIR [01/(2707)/13EMR-II]
- DST [SR/S1/IC-73/2010]
- DRDO [NRB-213/MAT/10-11]
- UGC [36-21/2008]
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In this manuscript we report the successful synthesis of pristine FeO center dot Fe2O3, 1-(naphthalen-1-yl)-2( thiophen-2-yl)-1H-phenanthro[9,10-d]imidazole (NTPI), fluorescent organic nanoparticles (FONs) of NTPI and NTPI-FeO center dot Fe2O3 nanocomposite. Pristine FeO center dot Fe2O3 and NTPI-FeO center dot Fe2O3 nanocomposite were characterised by XRD, SEM, EDS, TEM, SAED, XPS, DLS, UV, PL, life time FT-IR and magnetic hysteresis. We have extensively studied the photoluminescence and photoconductivity of both pristine FeO center dot Fe2O3 and NTPI-FeO center dot Fe2O3 nanocomposite. An enhancement in photoluminescence (PL) emission and reduced photoconductivity is observed for NTPI-FeO center dot Fe2O3 nanocomposite when compared to bare FeO center dot Fe2O3. NTPI adsorption on FeO center dot Fe2O3 reduces the non-radiative trap levels at the interface, resulting enhancement of PL intensity of nanocomposite. For FeO center dot Fe2O3, exponential rise and decay in photocurrent is observed upon UV irradiation in the ON and OFF state, respectively and unusual behavior of photocurrent is observed for NTPI-FeO center dot Fe2O3 composite. The NTPI behave as AIEE-active chemosensor for the detection of ferric ions in aqueous solution. Theoretical investigation shows that the binding energy and energy gap of the imidazole composites are highly dependent on the nature of the iron oxide cluster and the existence of charge transfer in the imidazole-iron oxide composite is explained.
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